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Autors principals: Martin, Ana, Rizzato, Roberto, Munuera-Javaloy, Carlos, Singh, Dileep, Bucher, Dominik B., Casanova, Jorge
Format: Preprint
Publicat: 2026
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Accés en línia:https://arxiv.org/abs/2604.09310
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author Martin, Ana
Rizzato, Roberto
Munuera-Javaloy, Carlos
Singh, Dileep
Bucher, Dominik B.
Casanova, Jorge
author_facet Martin, Ana
Rizzato, Roberto
Munuera-Javaloy, Carlos
Singh, Dileep
Bucher, Dominik B.
Casanova, Jorge
contents Spin defects in solids, such as the nitrogen-vacancy (NV) center in diamond, have emerged as a key tool for detecting nuclear spins at the nanoscale. While active nuclear spin control via radio-frequency (RF) irradiation is often unnecessary for standard spin-noise detection, it becomes essential for advanced protocols like multidimensional nanoscale NMR. In this work, we investigate nuclear spin control using correlation spectroscopy techniques. We demonstrate, both theoretically and experimentally, that the resulting nuclear spin dynamics depend critically on the initial RF phase and its orientation relative to the NV crystalline axis. Depending on these parameters, identical nuclear rotations can yield full, partial, or even vanishing contrast in the NV readout. These findings highlight a previously underappreciated aspect of spin manipulation in the spin-noise regime: the link between the phase and direction of the applied RF field and its direct impact on correlation-based experiments. Consequently, imperfect calibration of these parameters can lead to ambiguous signal contrasts and misinterpretation of the underlying nuclear spin dynamics. Our results provide deeper insight into nanoscale spin control and pave the way toward reliable multidimensional spin resonance experiments.
format Preprint
id arxiv_https___arxiv_org_abs_2604_09310
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Coherent Control of Nanoscale Nuclear Spin Ensembles in the Spin Noise Regime
Martin, Ana
Rizzato, Roberto
Munuera-Javaloy, Carlos
Singh, Dileep
Bucher, Dominik B.
Casanova, Jorge
Quantum Physics
Mesoscale and Nanoscale Physics
Spin defects in solids, such as the nitrogen-vacancy (NV) center in diamond, have emerged as a key tool for detecting nuclear spins at the nanoscale. While active nuclear spin control via radio-frequency (RF) irradiation is often unnecessary for standard spin-noise detection, it becomes essential for advanced protocols like multidimensional nanoscale NMR. In this work, we investigate nuclear spin control using correlation spectroscopy techniques. We demonstrate, both theoretically and experimentally, that the resulting nuclear spin dynamics depend critically on the initial RF phase and its orientation relative to the NV crystalline axis. Depending on these parameters, identical nuclear rotations can yield full, partial, or even vanishing contrast in the NV readout. These findings highlight a previously underappreciated aspect of spin manipulation in the spin-noise regime: the link between the phase and direction of the applied RF field and its direct impact on correlation-based experiments. Consequently, imperfect calibration of these parameters can lead to ambiguous signal contrasts and misinterpretation of the underlying nuclear spin dynamics. Our results provide deeper insight into nanoscale spin control and pave the way toward reliable multidimensional spin resonance experiments.
title Coherent Control of Nanoscale Nuclear Spin Ensembles in the Spin Noise Regime
topic Quantum Physics
Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2604.09310